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作物学报 ›› 2015, Vol. 41 ›› Issue (03): 458-467.doi: 10.3724/SP.J.1006.2015.00458

• 耕作栽培·生理生化 • 上一篇    下一篇

有机栽培对杂交粳稻产量和品质的影响

黄丽芬,张蓉,余俊,姜玲玲,苏宏鼎,庄恒扬*   

  1. 扬州大学农学院 / 扬州大学江苏省作物遗传生理国家重点实验室培育点 / 粮食作物现代产业技术协同创新中心,江苏扬州225009
  • 收稿日期:2014-06-28 修回日期:2014-12-19 出版日期:2015-03-12 网络出版日期:2015-01-12
  • 通讯作者: 庄恒扬, E-mail: zhy7979356@sina.com.cn
  • 基金资助:

    本研究由国家自然科学基金项目(31201154),江苏省高校优势学科建设工程项目和江苏省作物栽培生理重点实验室项目(K12008)资助。

Effects of Organic Farming on Yield and Quality of Hybrid Japonica Rice

HUANG Li-Fen,ZHANG Rong,YU Jun,JIANG Ling-Ling,SU Hong-Ding,ZHUANG Heng-Yang*   

  1. College of Agronomy, Jiangsu Key Laboratory of Crop Genetics and Physiology / Co-Innovation Center for Modern Production Technology of Grain Crops, Yangzhou University, Yangzhou 225009, China
  • Received:2014-06-28 Revised:2014-12-19 Published:2015-03-12 Published online:2015-01-12
  • Contact: 庄恒扬, E-mail: zhy7979356@sina.com.cn

摘要:

以杂交粳稻(常优2号、常优5号、甬优8号)和常规粳稻(淮稻5号、南粳46、南粳5055)为试材,比较研究了有机和常规栽培方式对两种类型粳稻的产量和品质的影响,探索了有机栽培条件下杂交粳稻实现稳产优质的可能性。结果表明,有机栽培杂交、常规粳稻平均产量分别为8.11 t hm-2和6.29 t hm-2,前者比后者高28.93%。有机栽培杂交粳稻的群体总茎蘖数低于常规粳稻,但成穗率较常规粳稻增加了6.5个百分点。两种类型水稻叶面积指数和光合势在各生育期均表现为有机栽培<常规栽培,但有机栽培杂交粳稻叶面积指数和光合势降幅较小。有机栽培条件下,杂交粳稻生育后期平均群体生长率是常规粳稻1.29倍,干物质积累比例高出8.81个百分点。有机栽培略微降低了杂交粳稻的加工品质,但显著改善了外观品质,提高胶稠度、降低直链淀粉含量,对蛋白质含量影响较小,总体上改善了蒸煮食味品质。有机栽培下杂交粳稻产量优势明显且有较好的品质性状,在有机稻米产业发展中具有独特的应用价值

关键词: 有机栽培, 杂交粳稻, 常规粳稻, 产量, 品质

Abstract:

Two types of japonica rice, including three varieties of hybrid japonica rice (Changyou 2, Changyou 5, Yongyou 8) and three varieties of conventional japonica rice (Huaidao 5, Nanjing 46, Nanjing 5055), were grown under organic farming and conventional farming. The possibility achieving stable production and high quality under organic farming was explored. The results showed that average yield of hybrid japonica rice and conventional japonica rice was 8.11 and 6.29 t ha-1 respectively, under organic farming. While, total stem and tiller number in the population of conventional rice varieties was more than that of hybrid rice under both farming treatments, the decline of tillers of hybrid japonica rice was more stable and as a result, the percentage of earbearing tillers of hybrid japonica rice under organic farming increased by 6.50% compared with conventional rice. In each growth period, rice leaf area index and photosynthesis potential showed the trend of conventional farming > organic farming, and also, compared with the conventional cultivation, smaller drops in those indexes were found under organic farming for hybrid japonica rice than for conventional japonica rice. Furthermore, the average population growth rate of hybrid japonica rice was 1.29% higher and the accumulation of dry matter ratio was 8.81% higher than those of conventional japonica rice. Compared with conventional cultivation, Organic farming slightly declined the processing quality of all rice varieties, but improved the appearance quality and eating quality through reducing the chalk white degree, increasing gel consistency and lowering amylose content. Whereas, the impact of farming methods was not significant on protein content. In sum, with significantly increasing yield and excellent quality traits, hybrid japonica rice displays obvious advantages under organic farming, therefore has a unique application value in the development of organic rice industry.

Key words: Organic farming, Hybrid japonica rice, Conventional japonica rice, Yield, Quality

[1]凌启鸿, 张洪程, 鞠章网, 戴其根, 霍中洋. 三安生物有机肥不同用量对有机水稻产量、品质和氮素吸收利用的影响. 中国稻米, 2010, 16(1): 17–22



Ling Q H, Zhang H C, Ju Z W, Dai Q G, Huo Z Y. Effect of different dosage of San'an Bio-organic Fertilizer on organic rice production, quality and utilization of nitrogen absorption. China Rice, 2010, 16(1): 17–22 (in Chinese)



[2]Reganold J P, Elliott L F, Unger Y L. Long-term effects of organic and conventional farming on soil erosion. Nature, 1987, 330: 370–372



[3]Saha S, Pandey A K, Gopinath K A, Bhattacharaya R, Kundu S, Gupta H S. Nutritional quality of organic rice grown on organic composts. Agron Sustain Dev, 2007, 27: 223–229



[4]金连登. 我国有机稻米生产现状及发展对策研究. 中国稻米, 2007, (3): 1–4



Jin L D. Production status and strategies of organic rice in China. China Rice, 2007(3): 1–4 (in Chinese)



[5]席运官. 我国有机食品开发模式与保障体系建设. 环境保护, 2005, (7): 25–28



Xi Y G. Analysis on the modes and guaranteeing system of organic food development in China. Environ Protection, 2005, (7): 25–28 (in Chinese)



[6]席运官, 钦佩, 丁公辉. 有机与常规种植稻米品质及安全性的分析与评价. 植物营养与肥料学报, 2006, 12: 454–458



Xi Y G, Qin P, Ding G H. Analysis and evaluation on quality and safety of organic and conventional rice. Plant Nutr Fert Sci, 2006, 12: 454–458 (in Chinese with English abstract)



[7]席运官, 钦佩. 有机农业生产基地建设的理论与方法探析. 中国生态农业学报, 2005, 13(1): 25–28



Xi Y G, Qin P. Theory and method of the establishment of organic agricultural production bases. Chin J Eco-Agric, 2005, 13(1): 25–28 (in Chinese with English abstract)



[8]Liu S, Huang D, Chen A, Wei W, Brookes P C, Li Y, Wu J. Differential responses of crop yields and soil organic carbon stock to fertilization and rice straw incorporation in three cropping systems in the subtropics. Agric Ecol Environ, 2014, 184: 51–58



[9]Li Z, Liu M, Wu X, Han F, Zhang T. Effects of long-term chemical fertilization and organic amendments on dynamics of soil organic C and total N in paddy soil derived from barren land in subtropical China. Soil Till Res, 2010, 106(2): 268–274



[10]席运官, 钦佩, 丁公辉, 樊卫妹, 韩才明. 基于RCSODS的有机水稻栽培施肥管理与效果分析. 上海农业学报, 2007, 23(2): 28–33



Xi Y G, Qin P, Ding G S, Fan W M, Chao C M. The application of RCSODS model to fertilization practice of organic rice and its effect analysis. Shanghai Acta Agric, 2007, 23(2): 28–33 (in Chinese with English abstract)



[11]孙向平, 李国学, 孟凡乔, 郭岩彬, 吴文良, 依力汉木, 陈勇. 新疆伊犁垦区有机水稻生产养分平衡及氮素污染风险分析. 农业工程学报, 2011, 27(增刊-2): 158–162



Sun X P, Li G X, Meng F Q, Guo Y B, Wu W L, Yili H M, Chen Y. Nutrients balance and nitrogen pollution risk analysis for organic rice production in Yili reclamation area of Xinjiang. Trans CSAE, 2011, 27(suppl-2): 158–162 (in Chinese with English abstract)



[12]席运官, 钦佩, 宗良纲. 有机水稻病虫草防治技术与经济效益分析. 南京农业大学学报, 2004, 27(3): 46–49



Xi Y G, Qin P, Zong L G. Studies on organic rice pest, disease and weeds control techniques and analysis of their economic benefits. J Nanjing Agric Univ, 2004, 27(3): 46–49 (in Chinese with English abstract)



[13]张三元, 张俊国, 金京德, 郭希明, 全成哲, 岩石真嗣, 徐会连, 原川达雄. 有机栽培环境对水稻产量构成及稻米品质的影响. 吉林农业科学, 2005, 30(2): 13–16



Zhang S Y, Zhang J G, Jin J D, Guo X M, Quan C Z, Rock S, Xu H L, Harakawa D X, Environmental impact of organic farming on the yield composition and quality of rice production. Jilin Agric Sci, 2005, 30(2): 13–16 (in Chinese)



[14]许燕芳, 钱虎君, 杨五一, 邵汉池, 张红生. 不同水稻品种(系)有机栽培产量差异分析. 中国种业, 2003, (7): 29



Xu Y F, Qian H J, Yang W Y, Shao H C, Zhang H S. Analysis on yields of different rice varieties under organic cultivation system. Chin Seed Industry, 2003, (7): 29 (in Chinese)



[15]许燕芳. 有机栽培条件下不同水稻品种有肥料对产量和品质的影响. 南京农业大学硕士学位论文, 江苏南京 2006



Xu Y F. Effects of Various Varieties and Organic Manures on Yield and Quality of Rice (Oryzae sativa L.) under Organic Cultivation. Master Dissertation of Nanjing Agricultural University, Nanjing, China, 2006 (in Chinese with English abstract)



[16]张洪程, 吴桂成, 李德剑, 肖跃成, 龚金龙, 李杰, 戴其根, 霍中洋, 许轲, 高辉, 魏海燕, 沙安勤, 周有炎, 王宝金, 吴爱国. 杂交粳稻13.5 t hm-2超高产群体动态特征及形成机制的探讨. 作物学报, 2010, 36: 1547–1558



Zhang H C, Wu G C, Li D J, Xiao Y C, Gong J L, Li J, Dai Q G, Huo Z Y, Xu K, Gao H, Wei H Y, Sha A Q, Zhou Y Y, Wang B J, Wu A G. Population characteristics and formation mechanism for super-high-yielding hybrid japonica rice (13.5 t ha−1). Acta Agron Sin, 2010, 36: 1547–1558 (in Chinese with English abstract)



[17]龚金龙, 胡雅杰, 龙厚元, 常勇, 李杰, 张洪程, 马荣荣, 王晓燕, 戴其根, 霍中洋, 许轲, 魏海燕, 邓张泽, 明庆龙. 大穗型杂交粳稻产量构成因素协同特征及穗部性状. 中国农业科学, 2012, 45: 2147–2158



Gong J L, Hu Y J, Long H Y, Chang Y, Li J, Zhang H C, Ma R R, Wang X Y, Dai Q G, Huo Z Y, Xu K, Wei H Y, Deng Z Z, Ming Q L. Study on collaborating characteristics of grain yield components and panicle traits of large panicle hybrid japonica rice. Sci Agric Sin, 2012, 45: 2147–2158 (in Chinese with English abstract)



[18]张洪程, 朱聪聪, 霍中洋, 许轲, 蒋晓鸿, 陈厚存, 高尚勤, 李德剑, 赵成美, 戴其根, 魏海燕, 郭保卫. 钵苗机插水稻产量形成优势及主要生理生态特点. 农业工程学报, 2013, 29(21): 50–59



Zhang H C, Zhu C C, Huo Z Y, Xu K, Jiang X H, Chen H C, Gao S Q, Li D J, Zhao C M, Dai Q G, Wei H Y, Guo B W. Advantages of yield formation and main characteristics of physiological and ecological in rice with nutrition bowl mechanical transplanting. Trans CSAE, 2013, 29(21): 50–59 (in Chinese with English abstract)



[19]张洪程, 戴其根, 霍中洋, 许轲, 高辉, 魏海燕, 桂玉清, 吴文革, 吴桂成, 端木银熙, 孙菊英, 赵品恒, 徐军, 李杰, 王艳, 龚金龙, 姚义, 沙安勤, 周有炎, 李德剑, 肖跃成, 王宝金, 吴爱国, 钱宗华, 於永杰, 李华. 水稻超高产栽培研究与探讨. 中国稻米, 2012, 18(1): 1–14



Zhang H C, Dai Q G, Huo Z Y, Xu K, Gao H, Wei H Y, Gui Y Q, Wu W G, Wu G C, Duanmu Y X, Sun J Y, Zhao P H, Xu J, Li J, Wang Y, Gong J L, Yao Y, Sha A Q, Zhou Y Y, Li D J, Xiao Y C, Wang B J, Wu A G, Qian Z H, Yu Y J, Li H. Research and discussion on the super-high-yield rice cultivation. China Rice, 2012, 18(1): 1–14 (in Chinese)



[20]Saha S, Pandey A K, Gopinath K A, Bhattacharaya R, Kundu S, Gupta H S. Nutritional quality of organic rice grown on organic composts. Agron Sustain Dev, 2007, 27: 223–229



[21]Tirol-Padre A, Ladha J K, Regmi A P, Bhandari A L, Inubushi K. Organic amendments affect soil parameters in two long-term rice-wheat experiments. Soil Sci Soc Am J, 2007, 71: 442–452



[22]Bulluck L R, Brosius M, Evanylo G K, Ristaino J B. Organic and synthetic fertility amendments influence soil microbial, physical and chemical properties on organic and conventional farms. Appl Soil Ecol, 2002, 19: 147–160



[23]Fließbach A, Oberholzer H, Gunst L, Mäder P. Soil organic matter and biological soil quality indicators after 21 years of organic and conventional farming. Agric Ecol Environ, 2007, 118: 273–284



[24]黄涛. 有机栽培条件下生物有机肥对稻田肥力和稻米品质的影响. 海南大学硕士学位论文, 海南海口, 2010



Huang T. Effects of Bio-organic Fertilizer Paddy Soil Fertility and Quality of Rice. Master Dissertation of Hainan University, Haikou, China, 2010 (in Chinese with English abstract)



[25]张玉烛, 张岳平, 曾翔, 谢建红, 周立军, 瞿华香, 张兴怀. 纯有机肥栽培对超级杂交水稻产量形成及植株生理特性的影响. 作物研究, 2006, (4): 308–311



Zhang Y Z, Zhang Y P, Zeng X, Xie J H, Zhou L J, Qu H X, Zhang X H. Effects of pure organic manure cultivation on yield formation and physiological characters in super hybrid rice. Crop Res, 2006, (4): 308–311 (in Chinese with English abstract)



[26]霍中洋, 李杰, 许轲, 戴其根, 魏海燕, 龚金龙, 张洪程. 高产栽培条件下种植方式对不同生育类型粳稻米质的影响. 中国农业科学, 2012, 45: 3932–3945



Huo Z Y, Li J, Xu K, Dai Q G, Wei H Y, Gong J L, Zhang H C. Effect of planting methods on quality of different growth and development types of japonica rice under high-yielding cultivation condition. Sci Agric Sin, 2012, 45: 3932–3945 (in Chinese with English abstract)



[27]程方民, 钟连进. 不同气候生态条件下稻米品质性状的变异及主要影响因子分析. 中国水稻科学, 2001, 15(3): 28–32



Cheng F M, Zhong L J. Variation of rice quality traits under different climate conditions and its main affected factors. Chin J Rice Sci, 2001, 15(3): 28–32 (in Chinese with English abstract)



[28]许凤英, 马均, 王贺正, 刘惠远, 黄清龙, 马文波, 明东风. 水稻强化栽培下的稻米品质. 作物学报, 2005, 31: 577–582



Xu F Y, Ma J, Wang H Z, Liu H Y, Huang Q L, Ma W B, Ming D F. Rice quality under the cultivation of SRI. Acta Agron Sin, 2005, 31: 577–582 (in Chinese with English abstract)



[29]全国明, 章家恩, 杨军, 陈瑞, 许荣宝. 稻鸭共作对稻米品质的影响. 生态学报, 2008, 28: 3475–3483



Quan G M, Zang J E, Yang J, Chen R, Xu R B. Impacts of integrated rice-duck farming system on rice quality. Acta Ecol Sin, 2008, 28: 3475–3483 (in Chinese with English abstract)



[30]邓华凤, 何强, 舒服, 张武汉, 杨飞, 荆彦辉, 东丽, 谢辉. 中国杂交粳稻研究现状与对策. 杂交水稻, 2006, 21(1): 1–6



Deng H F, He Q, Shu F, Zhang W H, Yang F, Jing Y H, Dong L, Xie H. Status and technical strategy on development of japonica hybrid rice in China. Hybrid Rice, 2006, 21(1): 1–6 (in Chinese with English abstract)



[31]王才林, 汤玉庚. 我国杂交粳稻育种的现状与展望. 中国农业科学, 1989, 22(5): 8–13



Wang C L, Tang Y G. Status and prospects of hybrid rice (Oryzae sativa L. ssp. sinica) breeding in China. Sci Agric Sin, 1989, 22(5): 8–13 (in Chinese with English abstract)



[32]谢辉, 荆彦辉, 曾强, 赵飞, 东丽, 邓华凤. 中国杂交粳稻发展的必要性及趋势. 北方水稻, 2007, (3): 10–13



Xie H, Jing Y H, Zeng Q, Zhao F, Dong L, Deng F H. The necessity and tendency of developing japonica hybrid rice in China. North Rice, 2007, (3): 10–13 (in Chinese with English abstract)

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